论文标题

摩西$ _2 $和ws $ _2 $单层的共鸣激发激动激发激动的激发激动的动力

Dynamics of resonantly excited excitons in MoSe$_2$ and WS$_2$ single-layers monitored with four-wave mixing

论文作者

Jakubczyk, Tomasz, Bartos, Miroslav, Nogajewski, Karol, Scarpelli, Lorenzo, Langbein, Wolfgang, Potemski, Marek, Kasprzak, Jacek

论文摘要

我们调查了摩西$ _2 $和ws $ _2 $降至4.5 k的单层中引起的激发激发激发激发量的动力学动力。为此,我们测量了近差四波混合(FWM)幅度的延迟依赖性,该幅度由三个,短激光脉冲引起。该信号不仅取决于影响探针吸收的光学激活激子的种群,还取决于通过相互作用引起的能量转移来影响探针的吸收,还取决于光学不活跃状态的吸收,从而影响了探针所经历的折射指数。因此,它可以深入了解激子的密度动力学,这些动力子不会直接搭配到光子。重现在幅度和相中检测到的相干信号,FWM延迟依赖性是通过几个指数衰减成分的相干叠加来建模的,其特征性时间常数从0.1 picsecond到1纳米秒。随着激发强度和/或温度的增加,我们观察到FWM场幅度的强大干扰效应,从而逐渐更复杂和非直觉信号动力学。我们将这种行为归因于越来越多的激子黑暗状态,该状态通过相对对吸收和折射率的影响来改变FWM场相。我们观察到,相对于摩西$ _2 $,激子重组发生在WS $ _2 $的时间更长的时间尺度上,这归因于前者的激子基地状态的黑暗特征,而后者则是明亮的。

We investigate dynamics of resonantly excited excitons in single-layers of MoSe$_2$ and WS$_2$ down to 4.5 K. To this end, we measure the delay dependence of the heterodyne four-wave mixing (FWM) amplitude induced by three, short laser pulses. This signal depends not only on the population of optically active excitons, which affects the absorption of the probe, but also on the population of optically inactive states, by interaction-induced energy shift, influencing the refractive index experienced by the probe. As such, it offers insight into density dynamics of excitons which do not directly couple to photons. Reproducing the coherent signal detected in amplitude and phase, the FWM delay dependence is modeled by a coherent superposition of several exponential decay components, with characteristic time constants from 0.1 picosecond up to 1 nanosecond. With increasing excitation intensity and/or temperature, we observe strong interference effects in the FWM field amplitude, resulting in progressively more complex and nonintuitive signal dynamics. We attribute this behaviour to increasingly populated exciton dark states, which change the FWM field phase by the relative effect on absorption and refractive index. We observe that exciton recombination occurs on a significantly longer timescale in WS$_2$ with respect to MoSe$_2$, which is attributed to the dark character of exciton ground state in the former and the bright in the latter.

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